Part-based Quantitative Analysis for Heatmaps

Fuente: arXiv
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Main Authors: Tursun, Osman, Kalkan, Sinan, Denman, Simon, Sridharan, Sridha, Fookes, Clinton
Format: Preprint
Published: 2024
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author Tursun, Osman
Kalkan, Sinan
Denman, Simon
Sridharan, Sridha
Fookes, Clinton
author_facet Tursun, Osman
Kalkan, Sinan
Denman, Simon
Sridharan, Sridha
Fookes, Clinton
contents Heatmaps have been instrumental in helping understand deep network decisions, and are a common approach for Explainable AI (XAI). While significant progress has been made in enhancing the informativeness and accessibility of heatmaps, heatmap analysis is typically very subjective and limited to domain experts. As such, developing automatic, scalable, and numerical analysis methods to make heatmap-based XAI more objective, end-user friendly, and cost-effective is vital. In addition, there is a need for comprehensive evaluation metrics to assess heatmap quality at a granular level.
format Preprint
id arxiv_https___arxiv_org_abs_2405_13264
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Part-based Quantitative Analysis for Heatmaps
Tursun, Osman
Kalkan, Sinan
Denman, Simon
Sridharan, Sridha
Fookes, Clinton
Machine Learning
Artificial Intelligence
Computer Vision and Pattern Recognition
Heatmaps have been instrumental in helping understand deep network decisions, and are a common approach for Explainable AI (XAI). While significant progress has been made in enhancing the informativeness and accessibility of heatmaps, heatmap analysis is typically very subjective and limited to domain experts. As such, developing automatic, scalable, and numerical analysis methods to make heatmap-based XAI more objective, end-user friendly, and cost-effective is vital. In addition, there is a need for comprehensive evaluation metrics to assess heatmap quality at a granular level.
title Part-based Quantitative Analysis for Heatmaps
topic Machine Learning
Artificial Intelligence
Computer Vision and Pattern Recognition
url https://arxiv.org/abs/2405.13264